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I am trying to create a function in Python 2.7.3 to open a sqlite database.
This is my code at the moment:

import sqlite3 as lite
import sys

db = r'someDb.sqlite'

def opendb(db):
        conn = lite.connect(db)
    except sqlite3.Error:
        print "Error open db.\n"
        return False
    cur = conn.cursor()
    return [conn, cur]

I have tried the code above and I have observed that the sqlite3 library opens the database declared if exists, or creates a new database if this one doesn't exist. Is there a way to check if the database exists with sqlite3 methods or I have to use file operation like os.path.isfile(path)?

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3 Answers 3

up vote 8 down vote accepted

You'll have to explicitly test for the existence using os.path.isfile:

if os.path.isfile(db):

There is no way to force the sqlite3.connect function to not create the file for you.

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There is apparently a way to test the file to check whether it is a SQLite file prior to using sqlite3.connect. See @Tom-Horen's response. – Nate Nov 14 '14 at 17:52
@Nate: sure; testing for the file content with a header check is a fine approach. :-) I was focusing on the original question: Is there a way to check if the database exists with sqlite3 methods, which there is not. – Martijn Pieters Nov 14 '14 at 17:55

os.path.isfile() is just telling you if a file exists, not if it exists AND is a SQLite3 database! Knowing, you could do this :

def isSQLite3(filename):
    from os.path import isfile, getsize

    if not isfile(filename):
        return False
    if getsize(filename) < 100: # SQLite database file header is 100 bytes
        return False

    with open(filename, 'rb'):
        header =

    return header[:16] == 'SQLite format 3\x00'

and subsequently use it like :

for file in files:
    if isSQLite3(file):
        print "'%s' is a SQLite3 database file" % file
        print "'%s' is not a SQLite3 database file" % file
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For Python 3, make sure you compare against bytes: Header[0:16] == b'SQLite format 3\000' (note the leading b for the format string – brice Apr 20 '14 at 14:42

I am using a function like the following at the beginning of my script so that I can try and figure out why a sqlite3 db script might not be working. Like the comments say, it uses 3 phases, checks if a path exist, checks if the path is a file, checks if that file's header is a sqlite3 header.

def checkdbFileforErrors():

    #check if path exists
        with open('/path/to/your.db'): pass
    except IOError:
        return 1

    #check if path if a file
    if not isfile('/path/to/your.db'):
        return 2

    #check if first 100 bytes of path identifies itself as sqlite3 in header
    f = open('/path/to/your.db', "rx")
    ima ='hex')
    #see magic header string
    if ima != "53514c69746520666f726d6174203300": 
        return 3

    return 0
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That should read if ima == '53514c69746520666f726d6174203300': return 3 – nimbusgb Jan 14 at 16:53
This design of returning numbers for each error or 0 for success is more C style than Python. Python is more about throwing exceptions. – j3g Nov 16 at 20:13

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